Pomeranchuk instability from electronic correlations in CsTi3Bi5 kagome metal
Abstract
Abstract Electronic nematicity, the spontaneous breaking of rotational symmetry, has emerged as a key instability in correlated quantum systems. CsTi 3 Bi 5 , a kagome metal of the AV 3 Sb 5 (A = K, Rb, Cs) family, hosts rich unconventional electronic phases, yet the origin of its nematicity remains unsettled. Here, we combine polarization-dependent angle-resolved photoemission spectroscopy with functional renormalization group calculations on a fully interacting ab initio model. We reveal an orbital-selective nematic deformation in the low-energy band structure and identify a finite angular momentum ( d -wave) Pomeranchuk instability driven by electronic correlations in specific orbital channels and detuning from Van Hove singularities. Our results establish a direct link between orbital selectivity and symmetry-breaking instabilities in CsTi 3 Bi 5 , providing a microscopic framework for nematic order in kagome systems.
Article Details
Authors (23)
Chiara Bigi
Matteo Dürrnagel
Institute for Theoretical Physics and Astrophysics, University of Würzburg
Lennart Klebl
Armando Consiglio
Ganesh Pokharel
Marta Zonno
Canadian Light Source, Inc., 44 Innovation Boulevard
Francois Bertran
Patrick Le Fèvre
Thomas Jaouen
Hulerich C. Tchouekem
Pascal Turban
Alessandro De Vita
Jill A. Miwa
Justin W. Wells
Dongjin Oh
Department of Physics, Massachusetts Institute of Technology
Riccardo Comin
Ronny Thomale
Lehrstuhl für Theoretische Physik I
Ilija Zeljkovic
Brenden R. Ortiz
Materials Science and Technology Division
Stephen D. Wilson
Giorgio Sangiovanni
Federico Mazzola
Domenico Di Sante